Department of Genetics, Ribeirão Preto Medical School, University of São Paulo, USP, Ribeirão Preto, SP, 14049-900, Brazil.
Department of Microbiology, Institute of Biological Sciences, Federal University of Minas Gerais, Belo Horizonte, MG, Brazil.
Mycopathologia. 2021 Jun;186(3):327-340. doi: 10.1007/s11046-021-00550-4. Epub 2021 Apr 9.
Treating fungal infections is challenging and frequently requires long-term courses of antifungal drugs. Considering the limited number of existing antifungal drugs, it is crucial to evaluate the possibility of repositioning drugs with antifungal properties and to revisit older antifungals for applications in combined therapy, which could widen the range of therapeutic possibilities. Undecanoic acid is a saturated medium-chain fatty acid with known antifungal effects; however, its antifungal properties have not been extensively explored. Recent advances indicate that the toxic effect of undecanoic acid involves modulation of fungal metabolism through its effects on the expression of fungal genes that are critical for virulence. Additionally, undecanoic acid is suitable for chemical modification and might be useful in synergic therapies. This review highlights the use of undecanoic acid in antifungal treatments, reinforcing its known activity against dermatophytes. Specifically, in Trichophyton rubrum, against which the activity of undecanoic acid has been most widely studied, undecanoic acid elicits profound effects on pivotal processes in the cell wall, membrane assembly, lipid metabolism, pathogenesis, and even mRNA processing. Considering the known antifungal activities and associated mechanisms of undecanoic acid, its potential use in combination therapy, and the ability to modify the parent compound structure, undecanoic acid shows promise as a novel therapeutic against fungal infections.
治疗真菌感染具有挑战性,通常需要长期使用抗真菌药物。鉴于现有的抗真菌药物数量有限,评估具有抗真菌特性的药物的重新定位可能性以及重新研究旧的抗真菌药物在联合治疗中的应用至关重要,这可能会拓宽治疗可能性的范围。十一碳烯酸是一种具有已知抗真菌作用的饱和中链脂肪酸;然而,其抗真菌特性尚未得到广泛探索。最近的进展表明,十一碳烯酸的毒性作用通过其对真菌基因表达的影响来调节真菌代谢,这些基因对于毒力至关重要。此外,十一碳烯酸适合化学修饰,可能在协同治疗中有用。这篇综述强调了十一碳烯酸在抗真菌治疗中的应用,强化了其已知的抗皮肤真菌活性。具体而言,在研究最为广泛的红色毛癣菌中,十一碳烯酸对细胞壁、膜组装、脂质代谢、发病机制甚至 mRNA 处理等关键过程产生了深远的影响。考虑到十一碳烯酸已知的抗真菌活性和相关机制、其在联合治疗中的潜在用途以及修饰母体化合物结构的能力,十一碳烯酸有望成为一种新型抗真菌治疗药物。